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Mapping the rain use efficiency of maize under three management practices on the Chinese Loess Plateau

机译:在中国黄土高原下的三种管理实践下绘制玉米的雨水利用效率

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Rain use efficiency (RUE, crop grain yield divided by annual precipitation) is key for agricultural production where water resources are limited. RUE of maize (Zea mays) was calculated based on grain yield data collected across the precipitation gradient on the Chinese Loess Plateau under three treatments: (1) CK, flat plot without mulch; (2) HM, half-mulch flat plot, i.e. alternating plastic film mulched row and bare row without ridge-furrow; and (3) DRM, two ridges and the furrow fully mulched with plastic film. RUE was highest in DRM treatment and lowest in CK. Plastic film mulch and ridge-furrow techniques significantly improve RUE, the improvement is largest in low precipitation regime. RUE under the three treatments trends to converge under higher precipitation regime. Regressions of RUE against annual precipitation were conducted and a unimodal RUE pattern was found across the precipitation gradient for CK and HM treatments; RUE linearly decreased (statistically significant) across the precipitation gradient under DRM treatment. RUE of maize showed positive associations with soil silt content in all three treatments, high silt content could be favorable for high RUE. Effects of soil silt content are larger in DRM and HM treatments than in CK, suggesting that reducing soil drainage is important for plastic film mulch and ridge-furrow techniques in dry areas. RUE in the DRM treatment was correlated to both precipitation (prcp) and soil silt content (silt, in %); stepwise regression for the DRM treatment produced the model RUE = − 0.02 × prcp + 0.16 × silt + 23.70 (r2 = 0.39, p < 0.05). Based on regression models, recent (averaging for 1950–2000) and future (averaging for 2010–2039) precipitation and soil texture data, the spatial distribution of RUE potential was mapped for the Loess Plateau. In the near future (the 2020s), mean annual precipitation is expected to increa- e on the Loess Plateau, which generally would have a positive effect on RUE of maize especially in low precipitation regimes. Spatially, plastic film mulch and ridge-furrow technique would improve RUE on the whole plateau under both recent and future climates, with the highest improvements in low precipitation regimes of northwest the plateau.
机译:雨水利用效率(rue,作物谷物产量除以年降水)是水资源有限的农业生产的关键。玉米(ZEA Mays)的rue是基于在中国黄土高原下的沉淀梯度上收集的谷物产量数据,如三种治疗:(1)CK,没有覆盖物的平板; (2)HM,半覆盖平板,即交替的塑料薄膜覆盖行和无脊沟的裸露; (3)DRM,两个脊和沟槽完全覆盖着塑料薄膜。 DRM治疗中的RUE最高,CK中最低。塑料薄膜覆盖和脊沟技术显着提高了Rue,改善在低降水状态下最大。三个治疗趋势下的趋势在提高降水制度下收敛。对年沉淀的rue回归进行,并且在CK和HM治疗的沉淀梯度上发现了单峰级曲调; DRM治疗下,rue在沉淀梯度下线性下降(统计学意义)。玉米辐射显示了所有三种治疗中的土壤淤泥含量的积极协会,高淤泥含量可能有利于高芸香。 DRM和HM治疗中土壤淤泥含量的影响比CK在CK中较大,表明减少土壤排水对于干燥区域中的塑料薄膜覆盖和脊沟技术很重要。 DRM处理中的RUE与沉淀(PRCP)和土壤淤泥含量(淤泥,%)相关; DRM处理的逐步回归产生的型号= - 0.02×PRCP + 0.16×SILT + 23.70(R 2 = 0.39,P <0.05)。基于回归模型,近期(平均为1950-2000)和未来(平均为2010-2039)降水和土壤纹理数据,为黄土高原映射了rue潜力的空间分布。在不久的将来(2020年代),平均年降水量预计将在黄土高原上增加,这通常会对玉米的辐射产生积极影响,特别是在低降水制度中。空间,塑料薄膜覆盖和脊沟技术将在近期和未来气候下改善整个高原的芸香,其高原的低降水制度的改善最高。

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